Localised Neutron Emission at the edge of high density JET Trace Tritium - ELMy H-mode plasmas A.Murari 6 on the behalf of G. Bonheure 1, S. Popovichev.

Slides:



Advertisements
Similar presentations
Ion Heating and Velocity Fluctuation Measurements in MST Sanjay Gangadhara, Darren Craig, David Ennis, Gennady Fiskel and the MST team University of Wisconsin-Madison.
Advertisements

An Image Filtering Technique for SPIDER Visible Tomography N. Fonnesu M. Agostini, M. Brombin, R.Pasqualotto, G.Serianni 3rd PhD Event- York- 24th-26th.
Fitting transport models to 14MeV neutron camera data D C McDonald, K D Zastrow and I Voitsekhovitch.
25 TH SEPTEMBER 2012 ADAS workshop | Didier VEZINET | PAGE 1 CEA | 10 AVRIL 2012 FAST NI AND FE DENSITY ESTIMATION USING SOFT XRAY MEASUREMENTS IN TORE.
Advanced GAmma Tracking Array
9th TTF Spain September 11, 2002 B. J. Peterson, NIFS, Japan page 1 Radiative Collapse and Density Limit in the Large Helical Device.
ASIPP Characteristics of edge localized modes in the superconducting tokamak EAST M. Jiang Institute of Plasma Physics Chinese Academy of Sciences The.
ELM Filament Propogation Measurements on MAST A. Kirk a, N. B. Ayed b, B. Dudson c, R. Scannel d (a) UKAEA Culham, (b) University of York, (c) University.
13th IEA/RFP Workshop – Stockholm October 9-11, D characterization of thermal core topology changes in controlled RFX-mod QSH states A. Alfier on.
Progress and New Results from the H-1NF Scanning Interferometer Scott Collis, George Warr, John Howard.
D Stork: TTE Overview - 20th Fusion Energy Conference - Vilamoura, Nov 2004 Overview of Transport, Fast Particle and heating and current-drive Physics.
Imaging Diagnostics at the H-1 National Plasma Fusion Research Facility Left: The coherence tomography system Above: Plasma emission reconstructions compared.
FOM - Institute for Plasma Physics Rijnhuizen Association Euratom-FOM Diagnostics and Control for Burning Plasmas Introduction Tony Donné Information taken.
D. Borba 1 21 st IAEA Fusion Energy Conference, Chengdu China 21 st October 2006 Excitation of Alfvén eigenmodes with sub-Alfvénic neutral beam ions in.
Measurements with the KSTAR Beam Emission Spectroscopy diagnostic system Máté Lampert Wigner Research Centre for Physics Hungarian Academy of Sciences.
Fast imaging of global eigenmodes in the H-1 heliac ABSTRACT We report a study of coherent plasma instabilities in the H-1 plasma using a synchronous gated.
RFX-mod Workshop – Padova, January Experimental QSH confinement and transport Fulvio Auriemma on behalf of RFX-mod team Consorzio RFX, Euratom-ENEA.
Nils P. Basse Plasma Science and Fusion Center Massachusetts Institute of Technology Cambridge, MA USA ABB seminar November 7th, 2005 Measurements.
ITPA Diagnostics 4/06 The Importance of Fast-Ion Profile Measurements in ITER W. Heidbrink Three examples from DIII-D Conclusion Fast-ion D  (FIDA) Technique.
Edge Localized Modes propagation and fluctuations in the JET SOL region presented by Bruno Gonçalves EURATOM/IST, Portugal.
XP NSTX Results Review Beam Modulation Effects on Ion Power Balance XP 737 P.W.Ross.
Correlation Analysis of Electrostatic Fluctuation between Central and End Cells in GAMMA 10 Y. Miyata, M. Yoshikawa, F. Yaguchi, M. Ichimura, T. Murakami.
Plasma Dynamics Lab HIBP E ~ 0 V/m in Locked Discharges Average potential ~ 580 V  ~ V less than in standard rotating plasmas Drop in potential.
PROTO-SPHERA Diagnostics PROTO-SPHERA WORKSHOP Frascati March 18-19, 2002.
12/03/2013, Praga 1 Plasma MHD Activity Observations via Magnetics Diagnostics: Magnetic island Analysis Magnetic island Analysis Frederik Ostyn (UGent)
A Comparison between Electroluminescence Models and Experimental Results D. H. Mills 1*, F. Baudoin 2, G. Chen 1, P. L. Lewin 1 1 University of Southampton,
Rotation effects in MGI rapid shutdown simulations V.A. Izzo, P.B. Parks, D. Shiraki, N. Eidietis, E. Hollmann, N. Commaux TSD Workshop 2015 Princeton,
1 ITPA St Petersburg April 2009G.Gorini JET results on the determination of thermal/non-thermal fusion yield from neutron emission spectroscopy.
10th ITPA conference, Avila, 7-10 Jan Effects of High Energy Ions Accelerated in front of ICRF Antennas in LHD S. Masuzaki on behalf of the LHD Experimental.
ITER Standard H-mode, Hybrid and Steady State WDB Submissions R. Budny, C. Kessel PPPL ITPA Modeling Topical Working Group Session on ITER Simulations.
High  p experiments in JET and access to Type II/grassy ELMs G Saibene and JET TF S1 and TF S2 contributors Special thanks to to Drs Y Kamada and N Oyama.
RF simulation at ASIPP Bojiang DING Institute of Plasma Physics, Chinese Academy of Sciences Workshop on ITER Simulation, Beijing, May 15-19, 2006 ASIPP.
1 Max-Planck-Institut für Plasmaphysik 10th ITPA meeting on SOL/Divertor Physics, 8/1/08, Avila ELM resolved measurements of W sputtering MPI für Plasmaphysik.
2 The Neutral Particle Analyzer (NPA) on NSTX Scans Horizontally Over a Wide Range of Tangency Angles Covers Thermal ( keV) and Energetic Ion.
Pellet Charge Exchange Measurement in LHD & ITER ITPA Tohoku Univ. Tetsuo Ozaki, P.Goncharov, E.Veschev 1), N.Tamura, K.Sato, D.Kalinina and.
Implications of TFTR D-T Experiments for ITER R.J. Hawryluk May 23, 2014.
CHI Run Summary for March 10-12, 31 & April 9, 2008 Flux savings from inductive drive of a Transient CHI started plasma (XP817) R. Raman, B.A. Nelson,
FOM - Institute for Plasma Physics Rijnhuizen Association Euratom-FOM Diagnostics and Control for Burning Plasmas Discussion All of you.
ASIPP HT-7 The effect of alleviating the heat load of the first wall by impurity injection The effect of alleviating the heat load of the first wall by.
Integrated Operation Scenarios ITPA Remaining duties ITPA CC meeting & IEA/ITPA JE planning meeting –12 – 14 (15) December 2011, Cadarache –Ide, Sips and.
HT-7 ASIPP The Influence of Neutral Particles on Edge Turbulence and Confinement in the HT-7 Tokamak Mei Song, B. N. Wan, G. S. Xu, B. L. Ling, C. F. Li.
HT-7 Soft x-ray PHA diagnostics in the HT-7 and the EAST Z.Y.Chen, Y.J.Shi,B.Lv,B.N.Wan, L.Q.Hu, S.Y.Lin Q.S.Hu, S.X.Liu, Institute of Plasma Physics,Chinese.
EFDA EUROPEAN FUSION DEVELOPMENT AGREEMENT Task Force S1 J.Ongena 19th IAEA Fusion Energy Conference, Lyon Towards the realization on JET of an.
Chalmers University of Technology Simulations of the formation of transport barriers including the generation of poloidal spinup due to turbulence J. Weiland.
Radial Electric Field Formation by Charge Exchange Reaction at Boundary of Fusion Device* K.C. Lee U.C. Davis *submitted to Physics of Plasmas.
Absolute neutron yield measurement using divertor NFM Kaschuck Yu.A., Krasilnikov A.V., Prosvirin D.V., Tsutskikh A.Yu. SRC RF TRINITI, Troitsk, Russia.
PERSISTENT SURVEILLANCE FOR PIPELINE PROTECTION AND THREAT INTERDICTION International Plan for ELM Control Studies Presented by M.R. Wade (for A. Leonard)
The Heavy Ion Fusion Virtual National Laboratory Neutralized Transport Experiment (NTX) P. K. Roy, S. S. Yu, S. Eylon, E. Henestroza, A. Anders, F. M.
TRANSP for core particle transport studies M. Maslov.
Comparison between X-ray measurements with the GEM detector and EFIT calculations Danilo Pacella Present address: JHU, Baltimore, MD Permanent address:
GOLEM operation based on some results from CASTOR
ERO code development A. Kirschner M. Airila, D. Borodin, S. Droste, C. Niehoff  The ERO code  ERO code management  Modelling of CH 4 puffing in ASDEX.
045-05/rs PERSISTENT SURVEILLANCE FOR PIPELINE PROTECTION AND THREAT INTERDICTION Taming The Physics For Commercial Fusion Power Plants ARIES Team Meeting.
Solenoid Free Plasma Start-up Mid-Run Summary (FY 2008) R. Raman and D. Mueller Univ. of Wash. / PPPL 16 April 2008, PPPL 1 Supported by Office of Science.
ContributorsEuratom Associations L. Carraro, M. Mattioli, M.E. Puiatti, P. Scarin, B. Zaniol Consorzio RFX, Padova, Italy P.DuMortier, A. Messiaen, J OngenaEcole.
Fast response of the divertor plasma and PWI at ELMs in JT-60U 1. Temporal evolutions of electron temperature, density and carbon flux at ELMs (outer divertor)
A.Yu. Chirkov1), S.V. Ryzhkov1), P.A. Bagryansky2), A.V. Anikeev2)
1 Peter de Vries – ITPA T meeting Culham – March 2010 P.C. de Vries 1,2, T.W. Versloot 1, A. Salmi 3, M-D. Hua 4, D.H. Howell 2, C. Giroud 2, V. Parail.
Scaling experiments of perturbative impurity transport in NSTX D. Stutman, M. Finkenthal Johns Hopkins University J. Menard, E. Synakowski, B. Leblanc,R.
Initial Results from the Scintillator Fast Lost Ion Probe D. Darrow NSTX Physics Meeting February 28, 2005.
HT-7 Proposal of the investigation on the m=1 mode oscillations in LHCD Plasmas on HT-7 Exp2005 ASIPP Youwen Sun, Baonian Wan and the MHD Team Institute.
Evaluation of Anomalous Fast-Ion Losses in Alcator C-Mod S. D. Scott Princeton Plasma Physics Laboratory In collaboration with R. Granetz, D. Beals, C.
Hard X-rays from Superthermal Electrons in the HSX Stellarator Preliminary Examination for Ali E. Abdou Student at the Department of Engineering Physics.
Soft X-Ray Tomography in HSX V. Sakaguchi, A.F. Almagri, D.T. Anderson, F.S.B. Anderson, K. Likin & the HSX Team The HSX Plasma Laboratory University of.
SAWTOOTH AND M=1 MODE BEHAVIOUR IN FTU PELLET ENHANCED DISCHARGES
Gamma Ray Spectrometry System Design for ITER Plasma Diagnostics
LH Generated Hot Spots on the JET Divertor
Status of Vertical Neutron Camera Integration
Mirko Salewski Technical University of Denmark Department of Physics
Presentation transcript:

Localised Neutron Emission at the edge of high density JET Trace Tritium - ELMy H-mode plasmas A.Murari 6 on the behalf of G. Bonheure 1, S. Popovichev 2, L.Bertalot 3,S. Conroy 4, J. Mlynar 5 and JET-EFDA Contributors 1 TEC Trilateral Euregio Cluster – ERM, Brussels, Belgium 2 UKAEA, Culham UK 3 ITER, EFDA-Garching, Germany 4 VR, Sweden 5 IPP.CR, Prague, Czech Republic 6. Consorzio RFX, ENEA, Padova, Italy Tenth Meeting of the ITPA Topical Group on Diagnostics Moscow, 10 – 14 April 2006 In close collaboration with TF DT

Overview Introduction Tomography with MFR (Minimum Fisher Information Regularization) method 2D Time resolved reconstructions from trace tritium gas puff experiments Edge Localised Neutron Sources (ELNS): strong emission at the edge Summary and discussion

Introduction: Neutron cameras Two multi-collimator arrays with 19 channels available in total, 10 horizontal and 9 vertical Channel spacing ~ cm near plasma centre Time resolution is ~ 10 ms Detection of 14 MeV neutrons with NE213 and Bicron detectors Detection of 2.5 MeV neutrons with NE213 detectors Each channel measures the neutron emissivity integrated over its viewing cone

The local neutron emissivity tells us about: spatial dependence of the neutron emission; alpha particles (and other charged fusion products) spatial distribution; spatial distribution of fuel ions e.g tritium diffusion and particle transport in TTE tritium gas puff experiments (G.Bonheure, submitted to NF) ; Importance of knowing the local neutron emissivity

During TTE “spatial asymmetries” in the neutron emission were observed and reported in: : in only RF heated plasma scenarios (Tritium minority scheme) : Strong reverse shear plasmas (current holes) : report on ELMy - H mode plasmas: localised Emission has been observed at the edge for all high density ELMy H mode scenarios

KN3 Neutron camera - TTE Profiles Raw data Shot S T transport in impurity seeded ELMy H mode plasmas Emissivity centre moves from ch 18 to ch 15 Time: from T puff start at s up to s in 50 ms step

2D inverse methods: Tomography analysis with MFR method This method is new for JET and is under development with expertise from J.Mlynar Implementation of neutron camera setup (with and without finite cone widths) Two implementations (Matlab) and C++ (L.Zabeo) Fast version generates several hundreds of frames per shot No additional assumptions on neutron emission Initial validation phase with ‘Phantom tests’ : With a free boundary, side wings are visible at boundary (10% level) – disappear when boundary is zero constrained

Tomography analysis – high n e DT - 14 MeV neutrons 2-D images (2fps) Bicron detectors A High density ELMy-H mode with T puff At time shortly after T puffing, the neutron cameras detect a high emissivity in upper and low field side vessel region which last > 50 ms !

Tomography analysis (same pulse with NE213 detectors) DT - 14 MeV neutrons 2-D images (2fps) NE213 detectors A High density ELMy-H mode with T puff At time shortly after T puffing, the neutron cameras detect a high emissivity in upper and low field side vessel region which last > 50 ms !

DT neutrons emissivity in 20.22s Results coherent with other tomographic methods (thanks to V. Kiptily). In particular the validated approach (C.Ingesson) used at JET since many years gives similar results. Since in this method there is a poloidal smoothing the emission is less concentrated but qualitatively the phenomenon is very similar.

Tomography analysis: low n e DT - 14 MeV neutrons 2-D images (15fps) Bicron detectors A Tritium puff case (ELMy-H mode with low density)

Summary of experimental Evidence 2D and Time resolved neutron emissivity was reconstructed with the MFR method Sequence of 2D images of neutron emissivity from tritium gas puff experiments were obtained In high density ELMy H-mode plasmas (ITER-like, n e > ), an ‘anomalous shape“ of neutron emissivity is systematically observed in the upper low field side edge region in images of neutron emissivity This effect is transient (50-150ms) and associated with tritium puff It is detected by both sets of detectors (NE213 and Bicrons) Raw data shows good statistics (> 1000 counts) Similar images are obtained with raw data. This excludes problems associated with various raw data corrections and tomographic reconstructions (which in any case agree). What is then causing the anomalous shape ?

Edge Localized Neutron Source (ELNS) Let’s suppose that the source ha the banana shape of the figure Source shown is only schematic Up-down symmetry (not uniform intensity but more intense near banana tips) How will be the reconstruction of neutron camera signal like this ?

Reconstructed image from phantom Resolution of ELNS is very poor

Conclusions In high density ELMy H-mode plasmas from tritium gas puff experiments, ‘transient anomalous shape’ is found in 2D images of neutron emissivity It is likely that an ELNS is produced transiently ( ms) by puffing T in high density ELMy H-mode plasma and in presence of high power D beam The present set-up of neutron camera is not optimized to resolve neutron source in the edge region This ELNS seem to be due to a) higher neutral beam power deposition at the edge at high density b) slower T diffusion at high density

Discussion: issues related to extended neutron source near the edge Further tritium experiments on JET - Adding lines of sight to KN3 is not an option - Use alpha particles losses diagnostics Vertical neutron camera in ITER: - Significant neutron emission can occur even at the edge of the plasma - It would be important to ensure that the design guarantees good coverage of the edge region (requirement of 10% accuracy in neutron profile) - Is there a risk involved in full T fuelling in ITER in similar operational regimes? (localised  losses, temperature pedestal 1-5 keV)

Edge Localized Neutron Source (ELNS) Tritium gas puff: Build-up of tritium density for ms due to ‘slow’ tritium diffusion High density: high number of D beam ions deposited (see figure on the right) in edge region (r > 0.75) Significant beam target reactivity ( ~ half central value at r = 0.75), source extends near up to H-mode edge pedestal source shape due to trapped beam ions (> 70% in this region) ELNS is a high density effect

Forward calculation How will the reconstruction be for neutron camera signal like this ?

Tomography analysis (same pulse with NE213 detectors) DT - 14 MeV neutrons 2-D images (15fps) NE213 detectors A Tritium puff case (ELMy-H mode with low density)

Tomography analysis DT - 14 MeV neutrons 2-D images (15fps) Bicron detectors A Tritium puff case (ELM-H mode with moderate density)

Tomography analysis (same pulse with NE213 detectors) DT - 14 MeV neutrons 2-D images (15fps) NE213 detectors A Tritium puff case (ELMy-H mode with moderate density)